Coverage Analysis for High-Speed Railway Communications with Narrow-Strip-Shaped Cells over Suzuki Fading Channels
Abstract
:1. Introduction
- We analyze the coverage performance at the cell edge. First, we analyze the statistical characteristics of the received signal-to-noise ratio (SNR). Then, according to the definition of ECP and the Gaussian–Hermite integral, we derive an analytical expression of the ECP. The ECP expression is shown to be a function of transmit power, cell radius, noise variance, standard deviation of shadow fading, HSR propagation environment, and SNR threshold.
- We analyze the average coverage performance of a cell, which can be characterized by the percentage of CCA. According to its mathematical definition, we derive its analytical expression. The percentage of CCA is also expressed as a function of system key parameters.
- We obtain a theoretical expression to link the ECP and the percentage of CCA. The percentage of CCA is expressed as the summation of the ECP and a positive increment. Thus, the relationship between the ECP and the percentage of CCA is established. As special cases, we also derive the theoretical expressions for the system without considering the small-scale fading.
- Some numerical results are provided. It is shown that the theoretical results match well with the simulation results, which verifies the accuracy of the derived theoretical expressions. Moreover, the small-scale fading has a strong effect on coverage performance, and thus it cannot be ignored. Furthermore, the effects of cell radius, transmit power, SNR threshold, propagation environment, and the shadow fading standard derivation on coverage performance are also provided.
2. System Model
3. Coverage Performance Analysis
3.1. Statistical Characteristics of SNR
3.2. ECP Analysis
3.3. Percentage of CCA Analysis
4. Relationship between ECP and Percentage of CCA
5. Numerical Results
5.1. Results of ECP
5.2. Results of Percentage of CCA
6. Conclusions
- For the HSR system with small-scale fading, analytical expressions of the ECP and the percentage of CCA are derived, respectively. To facilitate the comparison, the coverage performance indicator expressions for the system without considering the small-scale fading are also derived. Numerical results verify the accuracy of the derived expressions.
- To link the edge coverage performance and the average coverage performance of the whole cell, we derive the relationship between the ECP and the percentage of CCA. Specifically, the percentage of CCA is expressed as the summation of the ECP and a positive increment. Therefore, the average coverage performance of a cell is always better than the edge coverage performance.
- The HSR propagation environments have strong effects on coverage performance. For example, the station scenario has a smaller path loss and thus has a better coverage performance, while the mountain scenario has a larger path loss and thus has a worse coverage performance.
- It is shown that the ECP or the percentage of CCA will be overestimated or underestimated if the small-scale fading is not considered. This indicates that, for the coverage analysis in HSR communications, the small-scale fading cannot be ignored.
- The cell radius, transmit power, SNR threshold, and shadow fading standard derivation also have strong effects on coverage performance. Specifically, the coverage performance improves with the decrease in cell radius, the increase in transmit power, the decrease in SNR threshold, or the decrease in shadow fading standard derivation.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Proof of Theorem 1
Appendix B. Proof of Theorem 2
Appendix C. Proof of Corollary 2
Appendix D. Proof of Theorem 3
Appendix E. Proof of Corollary 3
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Scenarios | ||
---|---|---|
Urban | −20.47 | −1.82 |
Suburban | −6.72 | |
Rural | −6.71 | |
Cutting | −18.78 | |
Station | −8.86 | |
Mountain | ||
River | −2.93 |
Parameters | Symbols | Values |
---|---|---|
Carrier frequency | f | 800 MHz |
BS antenna height | 20 m | |
TAP antenna height | 4 m | |
Noise variance | ||
Order of Gauss–Hermite approximation | 40 |
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Lin, S.; Wang, H.; Li, W.; Wang, J. Coverage Analysis for High-Speed Railway Communications with Narrow-Strip-Shaped Cells over Suzuki Fading Channels. Entropy 2024, 26, 657. https://doi.org/10.3390/e26080657
Lin S, Wang H, Li W, Wang J. Coverage Analysis for High-Speed Railway Communications with Narrow-Strip-Shaped Cells over Suzuki Fading Channels. Entropy. 2024; 26(8):657. https://doi.org/10.3390/e26080657
Chicago/Turabian StyleLin, Shenghong, Hongyan Wang, Weiyong Li, and Jinyuan Wang. 2024. "Coverage Analysis for High-Speed Railway Communications with Narrow-Strip-Shaped Cells over Suzuki Fading Channels" Entropy 26, no. 8: 657. https://doi.org/10.3390/e26080657
APA StyleLin, S., Wang, H., Li, W., & Wang, J. (2024). Coverage Analysis for High-Speed Railway Communications with Narrow-Strip-Shaped Cells over Suzuki Fading Channels. Entropy, 26(8), 657. https://doi.org/10.3390/e26080657